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EP 0 472 905 B1 |
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EUROPEAN PATENT SPECIFICATION |
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Mention of the grant of the patent: |
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01.02.1995 Bulletin 1995/05 |
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Date of filing: 24.07.1991 |
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International Patent Classification (IPC)6: H02M 5/458 |
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Three phase to single phase converter
Dreiphasen-Einphasen-Umrichter
Convertisseur triphasé-monophasé
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Designated Contracting States: |
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DE FR GB |
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Priority: |
31.08.1990 US 575577
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Date of publication of application: |
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04.03.1992 Bulletin 1992/10 |
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Proprietor: INTERNATIONAL BUSINESS MACHINES CORPORATION |
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Armonk, NY 10504 (US) |
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Inventors: |
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- Carroll, Lawrence B.
Endwell, N.Y. 13760 (US)
- Kidder, Kenneth H., Jr.
Endicott, N.Y. 13760 (US)
- Visentin, Thomas
Wappingers Falls, N.Y. 12590 (US)
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Representative: Schäfer, Wolfgang, Dipl.-Ing. |
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IBM Deutschland
Informationssysteme GmbH
Patentwesen und Urheberrecht 70548 Stuttgart 70548 Stuttgart (DE) |
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References cited: :
US-A- 3 248 635 US-A- 4 752 866
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US-A- 4 423 461
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| Note: Within nine months from the publication of the mention of the grant of the European
patent, any person may give notice to the European Patent Office of opposition to
the European patent
granted. Notice of opposition shall be filed in a written reasoned statement. It shall
not be deemed to
have been filed until the opposition fee has been paid. (Art. 99(1) European Patent
Convention).
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[0001] The present invention is directed to an improved power supply, and particularly to
a power supply for providing single phase A.C. power from three phase lines.
[0002] US-A-4 752 866 (Huynh et al.), discloses a versatile current source inverter power
supply for an ozonator converting a three phase alternating current to a one phase
alternating current. The three phase alternating current is rectified to a D.C. current
and fed into a DC/AC thyristor bridge inverter circuit. However, no means to ensure
that a loss of one of the three input lines will not affect the single phase output
are taught in the disclosed circuits.
[0003] For certain applications it is necessary to provide single phase A.C. from three
phase lines. For example, a mainframe computer may be designed to operate on three
phase power because of its increased reliability, while peripheral equipment to be
used in connection with the computer would typically be designed to operate on single
phase. In such a case, the single phase may be obtained from two of the three phase
lines.
[0004] However, in such an arrangement, a problem arises if the single phase to which the
peripheral equipment is connected is interrupted. Thus, due to the provision of voltage
regulation, the computer will continue to operate satisfactorily on two phases, but
the peripheral equipment may be lost altogether. Since the loss of peripheral equipment
could render the system useless, it is important to ensure that such equipment continues
to operate when a single phase of the three phase power source is lost.
[0005] It is thus the object of the present invention to provide a three phase to single
phase converter which provides a single phase output which is not disturbed when an
input phase is lost.
[0006] This object is accomplished by an apparatus as defined in Claim 1 and a method as
defined in Claim 10.
[0007] In the preferred embodiment of the invention, the single phase A.C. output voltage
is regulated to compensate for load variations. Also, the single phase A.C. output
is obtained by first generating a rectified sine wave voltage, and then passing such
voltage through an unrectifier circuit.
[0008] The invention will be better understood by referring to the accompanying drawings,
wherein:
[0009] Figure 1 is a circuit diagram of an embodiment of the invention.
[0010] Figure 2 shows the toggling sequence for the full wave chopper and unrectifier circuits
of Figure 1.
[0011] Figure 3 shows the three phase current inputs and the voltage and current output
at full load.
[0012] Figure 4 shows the input current when an input phase is lost, and the voltage and
current output at full load.
[0013] Figure 5 is a pictorial illustration of the packaging for the apparatus.
[0014] Referring to Figure 1, three phase input lines 2 are depicted. The nominal voltage
of such lines as well as the voltage variation during operation may vary substantially,
as the system provides a regulated output. The object of the system is to provide
a constant single phase A.C. output voltage 4 notwithstanding variations in input
voltage, and even in the event that one of the input phases is completely lost.
[0015] To this end, the input lines 2 are fed to three phase rectifier 6, which may be a
standard six diode, three phase rectifying arrangement, resulting in a D.C. current
output. The D.C. current is fed to pulse width modulator 8, which is toggled at a
high frequency, e.g., 40 Khz, at clock input 9. Specific circuitry which may be used
for the pulse width modulator is well known, and for example, is shown in U.S. Patent
No. 3,737,755.
[0016] The pulse width modulator 8 is part of the voltage regulation arrangement of the
D.C. to D.C. part of the system. Thus, the first part of the circuitry produces a
D.C. voltage across capacitor 12, and this voltage is regulated by components including
reference voltage generator 14, comparator 16, and the pulse width modulator 8. More
specifically, voltage regulation is effected by providing a reference voltage which
is emitted by generator 14, comparing the voltage across capacitor 12 with the reference
voltage in comparator 16, and thereby providing a difference voltage for driving pulse
width modulator 8.
[0017] Thus, a pulse width modulated square wave is fed from the output of pulse width modulator
8 to input inductor 20, which filters the pulse frequency, thereby resulting in a
D.C. current, the magnitude of which varies in accordance with the regulation which
is introduced by modulator 8. Capacitor 12 could be physically connected to inductor
20, but it typically is necessary to change the voltage level, and for this purpose
transformer 24 is used. More particularly, the current from the inductor is fed to
full wave chopper 28 to convert it to A.C., and the resulting A.C. is fed to transformer
24. The output of transformer 24 is rectified by rectifier 30, before being fed to
capacitor 12.
[0018] Full wave chopper 28 is operated by alternately closing switches A and C together,
and then switches B and D together. This causes the current to flow first in one direction
through the transformer and then in the other direction, creating the requisite A.C.
current. The pulse sequencing of the switches A, B, C, and D of chopper 28 is shown
in Figure 2, and in order to reduce the size of transformer 24, the chopper may be
toggled at a relatively high rate. For example, in the preferred embodiment, the respective
half sections of the chopper are each toggled at 20 Khz. Specific circuitry which
may be employed in the full wave chopper is well known, and is, for example, disclosed
in the above-mentioned U.S. Patent No. 3,737,755. To complete the circuitry in the
D.C. to D.C. converter part of the system, free wheeling diode 32 is provided to ensure
that the current in inductor 20 is continuous.
[0019] In accordance with the present invention, single phase A.C. is generated from the
regulated D.C. voltage which is provided across capacitor 12. Briefly, this is effected
by causing a rectified sine wave current to be derived from the D.C. voltage at the
output of inductor 40, and feeding the rectified sine wave current to an unrectifier
means 42 for converting it to A.C.
[0020] Referring to Figure 1, signal generator 44 is provided for generating a rectified
sine wave voltage at a frequency of twice the desired frequency of the output voltage,
i.e., at 120 hz where the desired frequency of the output voltage is 60 hz. This voltage
is fed to one input of comparator 46, while the other input is a signal which is derived
from the single phase A.C. output through resistive dividing arrangement 60, 62, 64.
This signal is also a rectified sine wave, the magnitude of which corresponds to the
magnitude of the single phase output voltage. Thus, the output of comparator 46 is
a recitified sine wave, the magnitude of which corresponds to the degree of voltage
regulation which is necessary.
[0021] The output of comparator 46 drives pulse width modulator 50, which is preferably
toggled at a relatively high frequency, e.g., 40 Khz. Inductor 40 filters the high
frequency, thereby providing a rectified sine wave at the same frequency as provided
by signal generator 44, e.g., 120 hz, and having an amplitude which is determined
by the degree of voltage regulation which is introduced by comparator 46.
[0022] This rectified sine wave voltage is fed to unrectifier 42, which converts it to A.C.
In the operation of the unrectifier, respective switch pairs A′, C′, and B′, D′ are
alternately toggled as shown in connection with the waveform diagram of Figure 2.
Each pair is toggled at the desired frequency of the output voltage, e.g., 60 hz,
which causes a single phase regulated, A.C. output to appear on output lines 4. Free
wheeling diode 58 is provided to ensure that the current through induction 40 is continuous,
and a filter capacitor may be connected between the inductor and diode 58.
[0023] It is noted that the signal for toggling unrectifier 42, as well as the signals for
driving rectified sine wave voltage generators 44 and 62 are derived from the same
clock source, so as to be synchronized with each other. In an actual embodiment, a
master clock would be provided, and all switching frequency signals would be derived
from the master clock.
[0024] Thus, in accordance with the invention, a single phase A.C. output is provided which
is not disturbed when the input voltage changes, or when an input phase is lost. If
this should occur, the regulated D.C. voltage across capacitor 12 will remain the
same, and thus so will the single phase A.C. output voltage on lines 4.
[0025] In this regard, Figure 3 illustrates the input line currents of the three phases,
and the output voltage and current at full load. Figure 4 shows an input phase current
when one input phase is open, along with the output voltage and current at full load
during this condition. It is seen that the output voltage and current are not disturbed
when an input phase is lost, as they are substantially the same in both Figures 3
and 4.
[0026] Figure 5 is an illustration of packaging for the power supply of the invention. It
will be noted that the circuitry is disposed in a rectangular metal case 70 having
handles 72 and 84. A removable fan assembly 76 is provided to allow easy replacement
in the event of a failure. The unit is arranged so that it will not operate with the
fan assembly pulled out or with a failed fan.
[0027] The three phase input connector 78 and single phase output connector 80 are provided,
as are LED status indicators 82, which indicate undervoltage, overvoltage, and overcurrent
conditions, as well as normal operation. A circuit breaker 84 provides turn on/turn
off of the unit and primary circuit protection.
[0028] Thus, a three phase to single phase converter in accordance with the invention has
been described. While the invention has been disclosed in connection with an illustrative
embodiment, it should be appreciated that the invention is to be limited only by the
claims appended hereto.
1. Apparatus for converting a three phase input (2) to a single phase output (4) comprising:
means (6) for rectifying the three phase input (2) for providing a D.C. current,
means (40, 42) for generating a single phase A.C. output voltage from the D.C. current,
characterized by:
means (8, 32, 20, 28, 24, 30) for deriving a D.C. voltage across a storage capacitor
(12) from the D.C. current,
means for regulating the D.C. voltage across the capacitor (12) in order not to affect
the single phase output (4) when a loss of one of the three phase input lines occurs,
wherein the means for regulating the D.C. voltage across the capacitor (12) comprises
first voltage regulating means (8, 14, 16) responsive to the magnitude of the D.C.
voltage for modulating the D.C. current to keep the D.C. voltage substantially constant.
2. The apparatus of claim 1 further including
second voltage regulating means (44, 46, 50) for regulating the single phase A.C.
output voltage.
3. The apparatus of claim 1 or 2 wherein
the means for generating the A.C. output voltage includes:
means (40) for providing a rectified sine wave voltage, and
means for feeding the rectified sine wave voltage to an unrectifier means (42) for
providing the A.C. output voltage.
4. The apparatus according to any one of claims 2 or 3 wherein
the second voltage regulating means (44, 46, 50) includes a pulse width modulator
(50) and a filter means.
5. The apparatus according to any one of claims 3 or 4 wherein
the means (40) for providing the rectified sine wave voltage further includes:
means (44) for generating a rectified sine wave voltage and
means (46) for causing the duty cycle which is effected by the pulse width modulator
(50) to be controlled with the rectified sine wave voltage which is generated, or
with a signal which is derived therefrom.
6. The apparatus according to any one of claims 3 to 5 wherein
the means (44) for providing the rectified sine wave voltage provides such voltage
at twice the desired frequency of the single phase A.C. output voltage, and
wherein the unrectifier means (42) is toggled at the desired frequency of the output
voltage.
7. The apparatus according to any one of the above claims wherein
the first voltage regulating means (8, 14, 16) includes a pulse width modulator (8)
and an inductor (20).
8. The apparatus of claim 7 further comprising:
full wave chopper means (28) connected to the inductor (20), and
a transformer (24) which has a primary winding which is connected to the output of
the full wave chopper means (28), and a secondary winding which is connected through
rectifier means (30) to the storage capacitor (12).
9. The apparatus according to any one of the above claims
which is contained in a housing (70) having the shape of a rectangular solid, and
wherein a three phase input connector (78), a single phase output connector (80),
circuit breaker means (84), a handle (72, 74), and status indicators (82) are all
located at one end of the rectangular solid.
10. A method of converting a three phase input to a single phase output (4) comprising
the steps of:
rectifying the three phase input to provide a D.C. current,
deriving a D.C. voltage from the D.C. current,
the method being characterised by
storing energy from said DC current into a storage capacitor,
regulating the D.C. voltage in order not to affect the single phase output (4) when
a loss of one of the three phase input lines occurs, and
generating a single phase A.C. output voltage from the regulated D.C. voltage.
1. Gerät zum Umrichten einer Dreiphasen-Eingangsspannung (2) in eine Einphasen-Ausgangsspannung
(4), enthaltend:
Mittel (6) zum Gleichrichten der Dreiphasen-Eingangspannung (2), um einen Gleichstrom
zu liefern,
Mittel (40, 42) zum Erzeugen einer Einphasen-Ausgangs-Wechselspannung aus dem Gleichstrom,
gekennzeichnet durch:
Mittel (8, 32, 20, 28, 24, 30), um aus dem Gleichstrom eine Gleichspannung an einem
Speicherkondensator (12) abzuleiten,
Mittel zum Regeln der Gleichspannung an dem Kondensator (12), um die Einphasen-Ausgangsspannung
(4) nicht zu beeinflussen, wenn ein Ausfall einer der Dreiphasen-Eingangsleitungen
auftritt,
wobei die Mittel zum Regeln der Gleichspannung an dem Kondensator (12) erste Mittel
(8, 14, 16) zur Spannungsregelung umfassen, die auf die Größe der Gleichspannung zum
Modulieren des Gleichstroms ansprechen, um die Gleichspannung im wesentlichen konstant
zu halten.
2. Gerät nach Anspruch 1, weiter enthaltend
zweite Mittel (44, 46,50) zur Spannungsregelung, um die Einphasen-Ausgangs-Wechselspannung
zu regeln.
3. Gerät nach den Ansprüchen 1 oder 2, bei dem
die Mittel zum Erzeugen der Ausgangs-Wechselspannung einschließen:
Mittel (40) zum Liefern einer gleichgerichteten Sinusspannung und
Mittel zum Zuführen der gleichgerichteten Sinusspannung zu einem Mittel (42) zur Wechselrichtung
für das Liefern der Ausgangs-Wechselspannung.
4. Gerät gemäß irgendeinem der Ansprüche 2 oder 3, bei dem
die zweiten Mittel (44, 46, 50) zur Spannungsregelung einen Impulsbreiten-Modulator
(50) und ein Filtermittel enthalten.
5. Gerät nach irgendeinem der Ansprüche 3 oder 4, bei dem
die Mittel (40) zum Liefern der gleichgerichteten Sinusspannung weiter enthalten:
ein Mittel (44) zum Erzeugen einer gleichgerichteten Sinusspannung und
ein Mittel (46), um zu bewirken, daß die Einschaltdauer, die durch den Impulsbreiten-Modulator
(50) bewirkt wird, durch die gleichgerichtete Sinusspannung, die erzeugt wird, gesteuert
wird oder durch ein Signal, das davon abgeleitet wird.
6. Gerät gemäß irgendeinem der Ansprüche 3 bis 5, bei dem
das Mittel (44) zum Liefern der gleichgerichteten Sinusspannung solch eine Spannung
mit der doppelten als der gewünschten Frequenz der Einphasen-Ausgangs-Wechselspannung
liefert, und
bei dem das Mittel (42) zur Wechselrichtung mit der gewünschten Frequenz der Ausgangsspannung
umgeschaltet wird.
7. Gerät gemäß irgendeinem der obigen Ansprüche, bei dem
die ersten Mittel (8, 14, 16) zur Spannungsregelung eine Impulsbreiten-Modulator (8)
und eine Drosselspule (20) einschließen.
8. Gerät nach Anspruch 7, weiter enthaltend:
ein Vollwellen-Zerhackermittel (28), das mit der Drosselspule (20) verbunden ist,
einen Transformator (24), der eine Primärwicklung besitzt, die mit dem Ausgang des
Vollwellen-Zerhackermittels (28) verbunden ist, und eine Sekundärwicklung, die über
das Gleichrichtermittel (30) mit dem Speicherkondensator (12) verbunden ist.
9. Gerät gemäß irgendeinem der obigen Ansprüche,
das in einem Gehäuse (70) enthalten ist, das die Form eines rechtwinkligen Körpers
aufweist, und
bei dem ein Dreiphasen-Eingangsstecker (78), ein Wechselstrom-Ausgangsstecker (80),
Mittel (84) zur Stromkreisunterbrechung, ein Griff (72, 74) und
Zustandsanzeiger (82) alle an einem Ende des rechtwinkligen Körpers angeordnet sind.
10. Verfahren zum Umrichten einer Dreiphasen-Eingangsspannung in eine Einphasen-Ausgangsspannung
(4), umfassend die Schritte des:
Gleichrichtens der Dreiphasen-Eingangsspannung, um einen Gleichstom zu liefern,
Ableitens einer Gleichspannung von dem Gleichstrom,
wobei das Verfahren gekennzeichnet ist durch
das Speichern von Energie des Gleichstromes in einem Speicherkondensator,
das Regeln der Gleichspannung, um die Einphasen-Ausgangsspannung (4) nicht zu beeinflussen,
wenn ein Ausfall einer der Dreiphasen-Eingangsleitungen auftritt, und
das Erzeugen einer Einphasen-Ausgangs-Welchselspannung aus der geregelten Gleichspannung.
1. Appareil pour convertir une entrée triphasée (2) en une sortie monophasée (4), comprenant
:
un dispositif (6) pour redresser l'entrée triphasée (2) pour produire un courant continu,
un dispositif(40, 42) pour générer en sortie une tension de courant alternatif monophasé
à partir du courant continu,
caractérisé en ce qu'il comprend, de plus :
des dispositifs (8, 32, 20, 28, 24, 30) pour dériver une tension continue aux bornes
d'un condensateur accumulateur d'énergie (12) à partir du courant continu,
un dispositif pour réguler la tension continue aux bornes du condensateur (12) de
façon à ne pas affecter la sortie monophasée (4) en cas de perte de l'une des lignes
de l'entrée triphasée,
dans lequel le dispositif pour réguler la tension continue aux bornes du condensateur
(12) comprend un premier dispositif régulateur de tension (8, 14, 16) sensible à l'amplitude
de la tension continue pour moduler le courant continu afin de maintenir la tension
continue relativement constante.
2. Appareil selon la revendication 1, comprenant
un deuxième dispositif régulateur de tension (44, 46, 50) pour réguler la tension
de sortie de courant alternatif triphasé.
3. Appareil selon la revendication 1 ou 2, dans lequel
le dispositif pour générer la tension de sortie alternative comprend :
un dispositif (40) pour fournir une tension sinusoïdale redressée, et
un dispositif pour alimenter un dispositif déredresseur (42) avec le tension sinusoïdale
redressée pour fournir la tension de sortie alternative.
4. Appareil selon l'une quelconque des revendications 2 et 3, dans lequel
le deuxième dispositif régulateur de tension (44, 46, 50) comprend un modulateur de
largeur d'impulsion (50) et un dispositif de filtrage.
5. Appareil selon l'une quelconque des revendications 3 et 4, dans lequel
le dispositif (40) pour fournir la tension sinusoïdale redressée comprend, de plus
:
un dispositif (44) pour générer une tension sinusoïdale redressée et
un dispositif (46) pour induire le contrôle du facteur de forme caractéristique de
modulateur de largeur d'impulsion (50) par la tension sinusoïdale redressée générée
ou par un signal dérivé de celle-ci.
6. Appareil selon l'une quelconque des revendications 3 à 5, dans lequel
le dispositif (44) pour fournir la tension sinusoïdale redressée fournit cette tension
au double de la fréquence voulue de la tension de sortie de courant alternatif monophasé,
et
dans lequel le dispositif déredresseur (42) est basculé à la fréquence voulue de la
tension de sortie.
7. Appareil selon l'une quelconque des revendications précédentes, dans lequel
le premier dispositif régulateur de tension (8, 14, 16) comprend un modulateur de
largeur d'impulsion (8) et une bobine d'inductance (20).
8. Appareil selon la revendication 7 comprenant, de plus :
un dispositif de découpage sur les deux alternances (28) relié à la bobine d'inductance
(20), et
un transformateur (24) dont l'enroulement primaire est connecté à la sortie du dispositif
de découpage sur les deux alternances (28) et dont l'enroulement secondaire est connecté,
via le dispositif redresseur (30), au condensateur accumulateur d'énergie (12).
9. Appareil selon l'une quelconque des revendicatons précédentes
contenu dans un châssis (70) ayant la forme d'un solide rectangulaire, et
dans lequel un connecteur d'entrée triphasée (78), un connecteur de sortie monophasée
(80), un dispositif coupe-circuit (84), une manette (72, 74) et des indicateurs d'état
(82) sont tous situés à une extrémité du solide rectangulaire.
10. Procédé pour convertir une entrée triphasée en une sortie monophasée (4) comprenant
les étapes consistant à :
redresser l'entrée triphasée pour fournir un courant continu,
dériver une tension continue du courant continu,
ledit procédé étant caractérisé en ce qu'il comprend également les étapes consistant
à
accumuler l'énergie du dit courant continu dans un condensateur accumulateur d'énergie,
réguler la tension continue afin de ne pas affecter la sortie monophasée (4) en cas
de perte de l'une des lignes de l'entrée monophasée, et
générer une tension de sortie de courant alternatif monophasé à partir de la tension
continue régulée.